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2017年3月9日 · I would begin by using the identity #tan^2(theta)=sec^2(theta)-1#. #=>intx(sec^2(x)-1)dx# #intxsec^2(x)dx-intxdx#

2018年3月20日 · We are given #f(x,y)=sin(x)cos(y) +e^xtan(y)#. Critical points occur when #(delf(x,y))/(delx)=0# and #(delf(x,y))/(dely)=0#

2016年10月21日 · 1/2sec(x^2)+C >I=intxtan(x^2)sec(x^2)dx The first substitution we will make is u=x^2. Differentiating both sides gives us (du)/dx=2x, so du=2xdx. Notice that in our integrand …

The limit is 1. Hopefully someone on here can fill in the blanks in my answer. The only way I can see to solve this is to expand the tangent using a Laurent series at x=oo.

2018年3月18日 · Evaluate integral #xtan^2xdx#? Calculus. 1 Answer maganbhai P. Mar 18, 2018 ...

2020年4月27日 · Stack Exchange Network. Stack Exchange network consists of 183 Q&A communities including Stack Overflow, the largest, most trusted online community for …

2016年11月16日 · How do you integrate #int xtan^-1x# from 0 to 1 by integration by parts method? Calculus Techniques of Integration Integration by Parts. 1 Answer

2018年3月11日 · I=e^xtan(x)+C We want to solve I=inte^x(tan(x)+sec^2(x))dx Split into two integrals I=inte^xtan(x)dx+inte ...

2016年1月13日 · int x* tan^3 (5x)* sec^6 (5x) dx =x/40 tan^8(5x)-1/1400 tan^7(5x)+x/15 tan^6(5x)-1/600 tan^5(5x)+x/20 tan^4 (5x)-1/1800 tan^3(5x)+1/600 tan(5x)-x/120+C Use …